Site-selective formation of an iron(iv)-oxo species at the more electron-rich iron atom of heteroleptic [small mu ]-nitrido diiron phthalocyanines

Umit Isci, Abayomi Faponle, Pavel Afanasiev, Florian Albrieux, Valerie Briois, Vefa Ahsen, Fabienne Dumoulin, Alexander B. Sorokin, Samuel De Visser

    Research output: Contribution to journalArticlepeer-review

    Abstract

    Iron(iv)-oxo species have been identified as the active intermediates in key enzymatic processes, and their catalytic properties are strongly affected by the equatorial and axial ligands bound to the metal, but details of these effects are still unresolved. In our aim to create better and more efficient oxidants of H-atom abstraction reactions, we have investigated a unique heteroleptic diiron phthalocyanine complex. We propose a novel intramolecular approach to determine the structural features that govern the catalytic activity of iron(iv)-oxo sites. Heteroleptic [small mu ]-nitrido diiron phthalocyanine complexes having an unsubstituted phthalocyanine (Pc1) and a phthalocyanine ligand substituted with electron-withdrawing alkylsulfonyl groups (PcSO2R) were prepared and characterized. A reaction with terminal oxidants gives two isomeric iron(iv)-oxo and iron(iii)-hydroperoxo species with abundances dependent on the equatorial ligand. Cryospray ionization mass spectrometry (CSI-MS) characterized both hydroperoxo and diiron oxo species in the presence of H2O2. When m-CPBA was used as the oxidant, the formation of diiron oxo species (PcSO2R)FeNFe(Pc1)[double bond, length as m-dash]O was also evidenced. Sufficient amounts of these transient species were trapped in the quadrupole region of the mass-spectrometer and underwent a CID-MS/MS fragmentation. Analyses of fragmentation patterns indicated a preferential formation of hydroperoxo and oxo moieties at more electron-rich iron sites of both heteroleptic [small mu ]-nitrido complexes. DFT calculations show that both isomers are close in energy. However, the analysis of the iron(iii)-hydroperoxo bond strength reveals major differences for the (Pc1)FeN(PcSO2R)FeIIIOOH system as compared to (PcSO2R)FeN(Pc1)FeIIIOOH system, and, hence binding of a terminal oxidant will be preferentially on more electron-rich sides. Subsequent kinetics studies showed that these oxidants are able to even oxidize methane to formic acid efficiently.
    Original languageEnglish
    Pages (from-to)5063-5075
    Number of pages13
    JournalChemical Science
    Volume6
    Issue number8
    DOIs
    Publication statusPublished - 2015

    Fingerprint

    Dive into the research topics of 'Site-selective formation of an iron(iv)-oxo species at the more electron-rich iron atom of heteroleptic [small mu ]-nitrido diiron phthalocyanines'. Together they form a unique fingerprint.

    Cite this